Particle Creation in Bouncing Cosmologies
Diogo C. F. Celani, Nelson Pinto-Neto, Sandro D. P. Vitenti

TL;DR
This paper studies scalar particle creation in bouncing cosmologies with quantum effects, analyzing how different couplings, masses, and background fluids influence particle production near the bounce, with implications for early universe physics.
Contribution
It provides a detailed analysis of scalar particle creation in bouncing models using the Wheeler-DeWitt equation, including effects of coupling, mass, and background matter.
Findings
Particle production is negligible for conformal coupling.
Massive particles are mainly produced at the bounce energy scale.
Massless particles can have significant production at Planck-scale bounces.
Abstract
We investigate scalar particle creation in a set of bouncing models where the bounce occurs due to quantum cosmological effects described by the Wheeler-DeWitt equation. The scalar field can be either conformally or minimally coupled to gravity, and it can be massive or massless, without self interaction. The analysis is made for models containing a single radiation fluid, and for the more realistic case of models containing the usual observed radiation and dust fluids, which can fit most of the observed features of our Universe, including an almost scale invariant power spectrum of scalar cosmological perturbations. In the conformal coupling case, the particle production is negligible. In the minimal coupling case, for massive particles, the results point to the same physical conclusion within observational constraints: particle production is most important at the bounce energy scale,…
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